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Is there a recommended way of doing a bitwise roll to either left or right by any amount?

For example with a byte - 0x57 rolr 3 = 0xEA.

I have not found any "roll" operation in the Z3py docs. I was thinking about using a BitVecs for each bit but that doesn't seem efficient/probably won't work. Any advice is appreciated, thanks.

Edit: Thanks for the answers so far. This is more of an API question because I suck at it right now. Heres what I have as a starting point.

def roll(bt):
count = BitVecVal(int('0x03', 16), 8)
s.add(bt == (bt << count | bt >> (8 - count)) & 0xFF)

a = BitVec('a', 8)
s = Solver()
roll(a)
s.add(a == BitVecVal(int('0xEA', 16), 8))
s.check()

This prints out nothing and model is not available.

share|improve this question
    
What is different from a shift? –  f p Dec 19 '12 at 15:26
    
>> is the arithmetical shift. That is why it does not work. Here is a link with an example: rise4fun.com/Z3Py/5NwMR –  Leonardo de Moura Dec 19 '12 at 16:04
3  
BTW, Z3Py has functions: RotateLeft and RotateRight. The z3.py module has a bunch of pydoc annotations. Here is the online API reference guide produced by doxygen: research.microsoft.com/en-us/um/redmond/projects/z3/… –  Leonardo de Moura Dec 19 '12 at 16:06
    
@LeonardodeMoura This code doesn't print out anything, is something not right? a = BitVec('a', 8) s = Solver() s.add(RotateLeft(a, 3) == BitVecVal(int('0xEA', 16), 8)) s.check() s.model() –  daybreak Dec 19 '12 at 16:19
    
You have to add print. Here is the link for your examples with the prints: rise4fun.com/Z3Py/v6D –  Leonardo de Moura Dec 19 '12 at 16:24

1 Answer 1

You can do a rotate like this:

size = 0x100  # size of the bitvector

rotated = (x << n) | (x >> (size - n)) & (size - 1)
share|improve this answer
1  
Eric, your solution is almost correct. The problem is that >>, in Z3Py, is the arithmetical shift. For the logical shift we have to use the function LShR. We can try it online rise4fun.com/Z3Py/kpd1 –  Leonardo de Moura Dec 19 '12 at 16:01
1  
@LeonardodeMoura: hence the & (size - 1) at the end. Trying what I wrote in my answer: rise4fun.com/Z3Py/K58 –  Eric Dec 19 '12 at 16:41
    
Eric: sorry about that. You are correct. –  Leonardo de Moura Dec 19 '12 at 16:53
    
@LeonardodeMoura: Actually, I have no idea why this code works. Won't (x >> (size - n)) fill all the high bits with 1s if the top bit of x is set? –  Eric Dec 19 '12 at 19:26
1  
Eric: You are correct, the (x >> (size - n)) will fill the high bits with 1s. That is, why I said it was incorrect. We can erase the high bits by doing the bitwise-and with ((1 << n) - 1). This will erase all but the first n bits. The bitwise-and with (size - 1) only works when ((1 << n) - 1) == (size - 1). That is indeed the case for n == 5 and size == 32. Here is the link for the general version: rise4fun.com/Z3Py/g127 –  Leonardo de Moura Dec 19 '12 at 20:01

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